期刊文献+

Numerical investigation of unsteady sheet/cloud cavitation over a hydrofoil in thermo-sensitive fluid

Numerical investigation of unsteady sheet/cloud cavitation over a hydrofoil in thermo-sensitive fluid
原文传递
导出
摘要 The sheet/cloud cavitation is of a great practical interest since the highly unsteady feature involves significant fluctuations around the body where the cavitation occurs. Moreover, the cavitating flows are complicated due to the thermal effects. The present paper numerically studies the unsteady cavitating flows around a NACA0015 hydrofoil in the fluoreketone and the liquid nitrogen with particular emphasis on the thermal effects and the dynamic evolution. The numerical results and the experimental measurements are generally in agreement. It is shown that the temperature distributions are closely related to the cavity evolution. Meanwhile, the temperature drop is more evident in the liquid nitrogen for the same cavitation number, and the thermal effect suppresses the occurrence and the development of the cavitating flow, especially at a low temperature in the fluoroketone. Furthermore, the cavitating flows are closely related to the complicated vortex structures. The distributions of the pressure around the hydrofoil is a major factor of triggering the unsteady sheet/cloud cavitation. At last, it is interesting to find that one sees a significant thermal effect on the cavitation transition, a small value of σ/2ɑ is required in the thermo-sensitive fluids to achieve the similar cavitation transition that occurs in the water. The sheet/cloud cavitation is of a great practical interest since the highly unsteady feature involves significant fluctuations around the body where the cavitation occurs. Moreover, the cavitating flows are complicated due to the thermal effects. The present paper numerically studies the unsteady cavitating flows around a NACA0015 hydrofoil in the fluoreketone and the liquid nitrogen with particular emphasis on the thermal effects and the dynamic evolution. The numerical results and the experimental measurements are generally in agreement. It is shown that the temperature distributions are closely related to the cavity evolution. Meanwhile, the temperature drop is more evident in the liquid nitrogen for the same cavitation number, and the thermal effect suppresses the occurrence and the development of the cavitating flow, especially at a low temperature in the fluoroketone. Furthermore, the cavitating flows are closely related to the complicated vortex structures. The distributions of the pressure around the hydrofoil is a major factor of triggering the unsteady sheet/cloud cavitation. At last, it is interesting to find that one sees a significant thermal effect on the cavitation transition, a small value of σ/2ɑ is required in the thermo-sensitive fluids to achieve the similar cavitation transition that occurs in the water.
出处 《Journal of Hydrodynamics》 SCIE EI CSCD 2017年第6期987-999,共13页 水动力学研究与进展B辑(英文版)
基金 Project supported by the National Natural Science Foundation of China(Grant Nos.51709042,11672094,51522902,51639003 and 51679037) the Fundamental Research Funds for the Central Universities(Grant Nos.DUT16RC(3)085,DUT17ZD233) the Natural Science Foundation of Heilongjiang Province(Grant No.A201409)
关键词 Sheet/cloud cavitation thermal effects dynamic evolution thermo-sensitive fluids Sheet/cloud cavitation, thermal effects, dynamic evolution, thermo-sensitive fluids
  • 相关文献

参考文献7

二级参考文献145

  • 1Utturkar, Y., Wu, J., Wang, G., Shyy, W.: Recent progress in modeling of cryogenic cavitation for liquid rocket propulsion. Prog. Aerosp. Sci. 41(7), 558-608 (2005).
  • 2Knapp, R.T., Daily, J.W., Hammitt, F.G.: Cavitation. McGraw- Hill, New York (1970).
  • 3Brennen, C.E.: Cavitation and Bubble Dynamics, Oxford Engineering & Sciences Series 44. Oxford University Press, Oxford (1995).
  • 4Joseph, D.D.: Cavitation in a flowing liquid. Phys. Rev. E. 51(3), 1649-1650 (1995).
  • 5Joseph, D.D.: Cavitation and the state of stress in a flowing liquid. J. Fluid Mech. 366, 367-378 (1998).
  • 6Lemmon, E.W., McLinden, M.O., Huber, M.L.: REFPROP: Reference Fluid Thermodynamic and Transport Properties. NIST Standard Database 23, version 7.0 (2002).
  • 7Sonntag, R.E., Borgnakke, C., Wylen, G.J.: Fundamentals of T thermodynamics. Wiley, New York (2004).
  • 8Ruggeri, R.S., Moore, R.D.: Method for Prediction of Pump Cavitation Performance for Various Liquids, Liquid Temperatures and Rotative Speeds. NASA TN D-5292 (1969).
  • 9Goel, T., Zhao, J., Thakur, S., Haftka, R.T., Shyy, W., Zhao, J.: Surrogate model-based strategy for cryogenic cavitation model validation and sensitivity evaluation. Int. J. Numer. Meth. Fluids. 58, 969-1007 (2008).
  • 10Wang, G., Senocak, I., Shyy, W., Ikohagi, T., Cao, S.: Daynam- ics of attached turbulent cavitating flows. Prog. Aerosp. Sci. 37, 551-581 (2001).

共引文献73

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部